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Short and long term surface chemistry and wetting behaviour of stainless steel with 1D and 2D periodic structures induced by bursts of femtosecond laser pulses

机译:飞秒激光脉冲爆发引起的具有一维和二维周期性结构的不锈钢的短期和长期表面化学及润湿行为

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We investigate the short and long term wettability of laser textured stainless steel samples in order to better understand the interplay between surface topography and chemistry. Very different 1D and 2D periodic as well as non-periodic surface patterns were produced by exploiting the extreme flexibility of a setup consisting of five rotating birefringent crystals, which allows generating bursts of up to 32 femtosecond laser pulses with fixed intra-burst delay of 1.5 ps. The change of the surface morphology as a function of the pulse splitting, the burst polarization state and the fluence was systematically studied. The surface topography was characterized by SEM and AFM microscopy. The laser textured samples exhibited, initially, superhydrophilic behaviour which, during exposure to ambient air, turned into superhydrophobic with an exponential growth of the static contact angle. The dynamic contact angle measurements revealed a water adhesive character which was explained by XPS analyses of the surfaces that showed an increase of hydrocarbons and more oxidized metal species with the aging. The characteristic water adhesiveness and superhydrophobicity of laser textured surfaces can be exploited for no loss droplet reversible transportation or harvesting.
机译:我们研究激光织构不锈钢样品的短期和长期润湿性,以便更好地了解表面形貌与化学之间的相互作用。通过利用由五个旋转双折射晶体组成的装置的极高灵活性,产生了截然不同的1D和2D周期性以及非周期性的表面图案,该图案允许生成最多32个飞秒激光脉冲的突发,且突发内固定的延迟为1.5 ps。系统研究了表面形态随脉冲分裂,突发偏振态和注量的变化。通过SEM和AFM显微镜对表面形貌进行表征。激光织构化的样品最初表现出超亲水性,在暴露于环境空气期间会变成超疏水性,并且静态接触角呈指数增长。动态接触角测量揭示了水粘合特性,这通过表面的XPS分析得以解释,随着时间的推移,碳氢化合物的增加表明碳氢化合物含量增加,而更多的氧化金属种类则增加。可以利用激光纹理表面的特有的水粘合性和超疏水性来实现无损失的液滴可逆运输或收获。

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